Chapter8B - Cobb Learning

Download Report

Transcript Chapter8B - Cobb Learning

Chapter 8B - Work and Energy
A PowerPoint Presentation by
Paul E. Tippens, Professor of Physics
Southern Polytechnic State University
©
2007
The Ninja, a roller coaster at Six Flags over
Georgia, has a height of 122 ft and a speed of
52 mi/h. The potential energy due to its
height changes into kinetic energy of motion.
Energy
Energy is anything that can be converted into work; i.e., anything that can
exert a force through a distance.
Energy is the capability for doing work.
Potential Energy
Potential Energy: Ability to do work by
virtue of position or condition.
A suspended weight
A stretched bow
Example Problem: What is the potential
energy of a 50-kg person in a skyscraper
if he is 480 m above the street below?
Gravitational Potential Energy
What is the P.E. of a 50-kg
person at a height of 480 m?
U = mgh = (50 kg)(9.8 m/s2)(480 m)
U = 235 kJ
Kinetic Energy
Kinetic Energy: Ability to do work by
virtue of motion. (Mass with velocity)
A speeding car
or a space rocket
Examples of Kinetic Energy
What is the kinetic energy of a 5-g bullet
traveling at 200 m/s?
5g
K  mv  (0.005 kg)(200 m/s)
2
1
2
1
2
K = 100 J
200 m/s
What is the kinetic energy of a 1000-kg
car traveling at 14.1 m/s?
K  mv  (1000 kg)(14.1 m/s)
1
2
2
1
2
K = 99.4 J
2
2
Work and Kinetic Energy
A resultant force changes the velocity of an
object and does work on that object.
vo
m
vf
x
F
F
m
a
Work  Fx  (ma) x;
Work  mv  mv
1
2
2
f
1
2
v v
2
0
2
f
2
0
2x
The Work-Energy Theorem
Work is equal
to the change
in ½mv2
Work  mv  mv
1
2
2
f
1
2
2
0
If we define kinetic energy as ½mv2 then we
can state a very important physical principle:
The Work-Energy Theorem: The work
done by a resultant force is equal to the
change in kinetic energy that it produces.
Example 1: A 20-g projectile strikes a mud
bank, penetrating a distance of 6 cm before
stopping. Find the stopping force F if the
entrance velocity is 80 m/s.
6 cm
80
m/s
0
x
2
2
Work = ½ mvf - ½ mvo
F x = - ½ mvo2
F=?
F (0.06 m) cos 1800 = - ½ (0.02 kg)(80 m/s)2
F (0.06 m)(-1) = -64 J
F = 1067 N
Work to stop bullet = change in K.E. for bullet
Example 2: A bus slams on brakes to avoid
an accident. The tread marks of the tires are
80 m long. If mk = 0.7, what was the speed
before applying brakes?
Work = DK
Work = F(cos q) x
f = mk.n = mk mg
Work = - mk mg x
2 Work
-½ DK
mv=
o = -mk mg x
25 m
f
0
DK = ½ mvf2 - ½ mvo2
vo =
vo = 2(0.7)(9.8 m/s2)(25 m)
2mkgx
vo = 59.9 ft/s
Example 3: A 4-kg block slides from rest at
top to bottom of the 300 inclined plane. Find
velocity at bottom. (h = 20 m and mk = 0.2)
x
fn
h
mg
300
Plan: We must calculate both
the resultant work and the
net displacement x. Then the
velocity can be found from
the fact that Work = DK.
Resultant work = (Resultant force down the
plane) x (the displacement
down the plane)
Example 3 (Cont.): We first find the net
displacement x down the plane:
f
x
n
h
mg
300
h
x
300
From trig, we know that the Sin 300 = h/x and:
h
sin 30 
x
0
20 m
x
 40 m
0
sin 30
Example 3(Cont.): Next we find the resultant
work on 4-kg block. (x = 40 m and mk = 0.2)
Draw free-body diagram to find the resultant force:
f
n
mg cos
h
mg
f
x = 40 m
300
300
300
y
n
mg sin 300
x
mg
Wx = (4 kg)(9.8 m/s2)(sin 300) = 19.6 N
Wy = (4 kg)(9.8 m/s2)(cos 300) = 33.9 N
Example 3(Cont.): Find the resultant force on
4-kg block. (x = 40 m and mk = 0.2)
f
33.9 N
300
n
Resultant force down
plane: 19.6 N - f
19.6 N
Recall that fk = mk n
y
mg
x
SFy = 0 or
n = 33.9 N
Resultant Force = 19.6 N – mkn ; and mk = 0.2
Resultant Force = 19.6 N – (0.2)(33.9 N) = 12.8 N
Resultant Force Down Plane = 12.8 N
Example 3 (Cont.): The resultant work on
4-kg block. (x = 40 m and FR = 12.8 N)
x
FR
300
(Work)R = FRx
Net Work = (12.8 N)(40 m)
Net Work = 512 J
Finally, we are able to apply the work-energy
theorem to find the final velocity:
0
Work  mv  mv
1
2
2
f
1
2
2
0
Example 3 (Cont.): A 4-kg block slides from
rest at top to bottom of the 300 plane. Find
velocity at bottom. (h = 20 m and mk = 0.2)
x
fn
Resultant Work = 512 J
Work done on block equals
the change in K. E. of block.
h
mg
300
0
½ mvf2 - ½ mvo2 = Work
½(4 kg)vf2 = 512 J
½ mvf2 = 512 J
vf = 16 m/s
Power
Power is defined as the rate at which
work is done: (P = dW/dt )
F
Work F r
t
m
4s
10 kg
h
20 m
mg
Power 
time

t
mgr (10kg)(9.8m/s 2 )(20m)
P

t
4s
P  490 J/s or 490 watts (W)
Power of 1 W is work done at rate of 1 J/s
Units of Power
One watt (W) is work done at the rate of
one joule per second.
1 W = 1 J/s and 1 kW = 1000 W
One ft lb/s is an older (USCS) unit of power.
One horsepower is work done at the rate of
550 ft lb/s. ( 1 hp = 550 ft lb/s )
Example of Power
What power is consumed in lifting
a 70-kg robber 1.6 m in 0.50 s?
Fh mgh
P

t
t
2
(70 kg)(9.8 m/s )(1.6 m)
P
0.50 s
Power Consumed: P = 2220 W
Example 4: A 100-kg cheetah moves from
rest to 30 m/s in 4 s. What is the power?
Recognize that work is equal to
the change in kinetic energy:
Work  mv  mv
P
1
2
2
f
mv 2f
(100 kg)(30 m/s) 2

4s
t
1
2
2
0
Work
P
m = 100 kg
t
1
2
1
2
Power Consumed: P = 1.22 kW
Power and Velocity
Recall that average or constant velocity is
distance covered per unit of time v = x/t.
P=
Fx
t
=F
x
t
P  Fv
If power varies with time, then calculus is
needed to integrate over time. (Optional)
Since P = dW/dt:
Work   P(t ) dt
Example 5: What power
is required to lift a 900-kg
elevator at a constant
speed of 4 m/s?
P = F v = mg v
P = (900 kg)(9.8 m/s2)(4 m/s)
P = 35.3 kW
v = 4 m/s
Example 6: What work is done by a 4-hp
mower in one hour? The conversion
factor is needed: 1 hp = 550 ft lb/s.
 550ft  lb/s 
4hp 
  2200ft  lb/s
 1hp

Work
P
; Work  Pt
t
Work  (2200ft  lb/s)(60s)
Work = 132,000 ft lb
Summary
Potential Energy: Ability to do work
U

mgh
by virtue of position or condition.
Kinetic Energy: Ability to do work by
K  12 mv 2
virtue of motion. (Mass with velocity)
The Work-Energy Theorem: The work done by
a resultant force is equal to the change in
kinetic energy that it produces.
Work = ½ mvf2 - ½ mvo2
Summary (Cont.)
Power is defined as the rate at which P  Work
t
work is done: (P = dW/dt )
Work F r
Power 

time
t
P= F v
Power of 1 W is work done at rate of 1 J/s
CONCLUSION: Chapter 8B
Work and Energy